Concentrated solutions of monoclonal antibodies have attracted considerable attention due to their importance in pharmaceutical formulations; yet, their tendency to aggregate and the resulting high viscosity pose considerable problems. Here we tackle this problem by a soft condensed matter physics approach, which combines a variety of experimental measurements with a patchy colloid model, amenable of analytical solution. We thus report results of structural antibodies and dynamic properties obtained through scattering methods and microrheological experiments. We model the data using a colloid-inspired approach, explicitly taking into account both the anisotropic shape of the molecule and its charge distribution. Our simple patchy model is able to disentangle self-assembly and intermolecular interactions and to quantitatively describe the concentration-dependence of the osmotic compressibility, collective diffusion coefficient, and zero shear viscosity. Our results offer new insights on the key problem of antibody formulations, providing a theoretical and experimental framework for a quantitative assessment of the effects of additional excipients or chemical modifications and a prediction of the resulting viscosity.

A Colloid Approach to Self-Assembling Antibodies

Zaccarelli, Emanuela;
2019

Abstract

Concentrated solutions of monoclonal antibodies have attracted considerable attention due to their importance in pharmaceutical formulations; yet, their tendency to aggregate and the resulting high viscosity pose considerable problems. Here we tackle this problem by a soft condensed matter physics approach, which combines a variety of experimental measurements with a patchy colloid model, amenable of analytical solution. We thus report results of structural antibodies and dynamic properties obtained through scattering methods and microrheological experiments. We model the data using a colloid-inspired approach, explicitly taking into account both the anisotropic shape of the molecule and its charge distribution. Our simple patchy model is able to disentangle self-assembly and intermolecular interactions and to quantitatively describe the concentration-dependence of the osmotic compressibility, collective diffusion coefficient, and zero shear viscosity. Our results offer new insights on the key problem of antibody formulations, providing a theoretical and experimental framework for a quantitative assessment of the effects of additional excipients or chemical modifications and a prediction of the resulting viscosity.
2019
Istituto dei Sistemi Complessi - ISC
Inglese
16
6
2394
2404
11
https://pubs.acs.org/doi/pdf/10.1021/acs.molpharmaceut.9b00019?rand=2x6yoptj
antibodies
self-assembly
patchy colloids
7
info:eu-repo/semantics/article
262
Skar-Gislinge, Nicholas; Ronti, Michela; Garting, Tommy; Rischel, Christian; Schurtenberger, Peter; Zaccarelli, Emanuela; Stradner, Anna
01 Contributo su Rivista::01.01 Articolo in rivista
open
   Hybrid Colloidal Systems with Designed Response
   COLLDENSE
   H2020
   642774

   Modeling microgels: from microscopic design to macroscopic description
   MIMIC
   H2020
   681597
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/362364
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